Parametric Stability Analysis for Circuit Quantum Electrodynamical Hardwares
- URL: http://arxiv.org/abs/2505.13177v1
- Date: Mon, 19 May 2025 14:31:46 GMT
- Title: Parametric Stability Analysis for Circuit Quantum Electrodynamical Hardwares
- Authors: Maria Gabriela Boada, Andrea Delgado, Jose Morales Escalante,
- Abstract summary: We show how time-dependent modulation maps the dynamics to Mathieu-type equations.<n>Perturbative corrections capture effects like higher harmonics and weak nonlinearities.<n>These findings inform thresholds for readout fidelity, amplifier gain, and multi-qubit gate stability.
- Score: 0.8192907805418583
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: The transmon qubit, essential to quantum computation, exhibits disordered dynamics under strong parametric drives critical to its control. We present a combined theoretical and numerical study of stability regions in circuit QED using Floquet theory, focusing on the appearance of Arnold tongues that distinguish stable from unstable regimes. Starting from simple Josephson circuits and progressing to full multimode qubit-cavity systems, we show how time-dependent modulation maps the dynamics to Mathieu-type equations, revealing thresholds for parametric resonances. Perturbative corrections capture effects like higher harmonics and weak nonlinearities. Simulations validate these predictions and expose sensitivity to fabrication parameters. These findings inform thresholds for readout fidelity, amplifier gain, and multi-qubit gate stability.
Related papers
- A Computational Framework for Simulations of Dissipative Non-Adiabatic Dynamics on Hybrid Oscillator-Qubit Quantum Devices [3.3480747994809894]
We introduce a computational framework for simulating non-adiabatic vibronic dynamics on circuit quantum electrodynamics platforms.<n>We simulate energy transfer dynamics in a triad model of photosynthetic chromophores inspired by natural antenna systems.
arXiv Detail & Related papers (2025-02-25T03:56:45Z) - Josephson bifurcation readout: beyond the monochromatic approximation [49.1574468325115]
We analyze properties of bifurcation quantum detectors based on weakly nonlinear superconducting resonance circuits.
This circuit can serve as an efficient detector of the quantum state of superconducting qubits.
arXiv Detail & Related papers (2024-05-25T22:22:37Z) - Stabilizing Quantum Simulators Of Gauge Theories Against $1/f$ Noise [0.0]
This thesis investigates the application of quantum simulation in the ongoing "second" quantum revolution.
Gauge theories are of particular interest in modern quantum simulators as they offer a new probe of high-energy physics on low-energy tabletop devices.
arXiv Detail & Related papers (2024-02-26T18:37:35Z) - Dissipative Dynamics of Graph-State Stabilizers with Superconducting
Qubits [0.0]
We study the noisy evolution of multipartite entangled states, focusing on superconducting-qubit devices accessible via the cloud.
We introduce an approach modeling the charge-parity splitting using an extended Markovian environment.
We show that the underlying many-body dynamics generate decays and revivals of stabilizers, which are used extensively in the context of quantum error correction.
arXiv Detail & Related papers (2023-08-03T16:30:35Z) - Critical sensing with a single bosonic mode without boson-boson interactions [3.8795402651871984]
We propose a simple critical quantum sensing scheme that requires neither of these conditions.
The scheme can be realized in different systems, e.g., ion traps and superconducting circuits.
arXiv Detail & Related papers (2023-05-28T07:45:34Z) - Dissipative preparation and stabilization of many-body quantum states in
a superconducting qutrit array [55.41644538483948]
We present and analyze a protocol for driven-dissipatively preparing and stabilizing a manifold of quantum manybody entangled states.
We perform theoretical modeling of this platform via pulse-level simulations based on physical features of real devices.
Our work shows the capacity of driven-dissipative superconducting cQED systems to host robust and self-corrected quantum manybody states.
arXiv Detail & Related papers (2023-03-21T18:02:47Z) - Variational waveguide QED simulators [58.720142291102135]
Waveguide QED simulators are made by quantum emitters interacting with one-dimensional photonic band-gap materials.
Here, we demonstrate how these interactions can be a resource to develop more efficient variational quantum algorithms.
arXiv Detail & Related papers (2023-02-03T18:55:08Z) - X-parameter based design and simulation of Josephson traveling-wave
parametric amplifiers for quantum computing applications [0.0]
We present an efficient, accurate, and comprehensive analysis framework for generic, multi-port nonlinear parametric circuits.
We apply this method to Josephson traveling-wave parametric amplifiers (JTWPAs)
The gain and quantum efficiency are consistent with those obtained from Fourier analysis of time-domain solutions.
arXiv Detail & Related papers (2022-11-10T04:23:28Z) - Macroscopic noise amplification by asymmetric dyads in non-Hermitian
optical systems for generative diffusion models [55.2480439325792]
asymmetric non-Hermitian dyads are promising candidates for efficient sensors and ultra-fast random number generators.
integrated light emission from such asymmetric dyads can be efficiently used for all-optical degenerative diffusion models of machine learning.
arXiv Detail & Related papers (2022-06-24T10:19:36Z) - Role of stochastic noise and generalization error in the time
propagation of neural-network quantum states [0.0]
Neural-network quantum states (NQS) have been shown to be a suitable variational ansatz to simulate out-of-equilibrium dynamics.
We show that stable and accurate time propagation can be achieved in regimes of sufficiently regularized variational dynamics.
arXiv Detail & Related papers (2021-05-03T17:55:09Z) - Transmon platform for quantum computing challenged by chaotic
fluctuations [55.41644538483948]
We investigate the stability of a variant of a many-body localized (MBL) phase for system parameters relevant to current quantum processors.
We find that these computing platforms are dangerously close to a phase of uncontrollable chaotic fluctuations.
arXiv Detail & Related papers (2020-12-10T19:00:03Z) - Assessment of weak-coupling approximations on a driven two-level system
under dissipation [58.720142291102135]
We study a driven qubit through the numerically exact and non-perturbative method known as the Liouville-von equation with dissipation.
We propose a metric that may be used in experiments to map the regime of validity of the Lindblad equation in predicting the steady state of the driven qubit.
arXiv Detail & Related papers (2020-11-11T22:45:57Z) - Feedback-induced instabilities and dynamics in the Jaynes-Cummings model [62.997667081978825]
We investigate the coherence and steady-state properties of the Jaynes-Cummings model subjected to time-delayed coherent feedback.
The introduced feedback qualitatively modifies the dynamical response and steady-state quantum properties of the system.
arXiv Detail & Related papers (2020-06-20T10:07:01Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.